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April 13, 2026Journal of Insect Conservation0 citationsOpen Access

From success to uncertainty: the endangered Apollo butterfly, Parnassius apollo, in Štramberk four decades after reintroduction

TKTomáš KurasPalacký University OlomoucDJDominik JozekPalacký University OlomoucMCMichael CabejšekPalacký University Olomouc

Key Points

  • To assess the long-term sustainability of the Apollo butterfly population following its reintroduction, focusing on habitat and climatic impacts.
  • Analyzed a 40-year dataset of the Apollo butterfly population in Štramberk
  • Utilized ordinal logistic regression to identify predictors of population abundance
  • Monitored habitat closure using NDVI from satellite imagery
  • Compiled 30 years of climate data including temperature, precipitation, and humidity
  • Population peaked at over 2,000 individuals in the late 1990s but declined to critically low levels
  • Vegetation succession identified as the primary driver of population decline
  • Each 0.1 increase in NDVI correlated with an 86% reduction in higher abundance probabilities
  • Climatic factors had limited impact on the overall downward trend.

Abstract

Reintroductions are vital for conserving endangered butterflies, yet their long-term sustainability is rarely evaluated over multiple decades. We analysed the 40-year dataset of the Apollo butterfly (Parnassius apollo) in Štramberk (Czech Republic), the longest-monitored reintroduced population of this species globally. Using ordinal logistic regression and 30 years of environmental data, we evaluated how habitat succession and climatic variables affect population abundance, which was estimated through standardized field surveys and expert counts. Habitat closure was quantified via the satellite-based Normalized Difference Vegetation Index (NDVI) derived from Landsat imagery, while climatic predictors included temperature, precipitation, and humidity indices. Following its 1986 reintroduction, the population peaked at over 2,000 individuals in the late 1990s but has since declined to critically low levels. This decline is primarily driven by vegetation succession, with NDVI being the strongest predictor of population collapse. Each 0.1 unit increase in NDVI (a change corresponding to a typical decadal successional shift) was associated with an 86% reduction in the odds of the population reaching higher abundance categories. While climatic factors modulate annual performance, they do not explain the downward trend. Our results suggest that habitat degradation is the primary threat, implying that appropriate management remains a powerful tool for ensuring population persistence. Effective conservation of P. apollo in low-elevation habitats requires active management that maintains open, sun-exposed rocky surfaces to ensure high solar radiation and cold, dry winter microhabitats. Targeted removal of woody encroachment on south-facing slopes is essential to maintain vegetation-free patches that allow for winter freezing and desiccation. Such habitats provide the necessary resilience against both successional closure and detrimental climatic variability during the overwintering period.

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Cite This Study

Kuras et al. (2026) studied this question.

synapsesocial.com/papers/69dc87ea3afacbeac03ea06chttps://doi.org/10.1007/s10841-026-00767-y
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